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Fast scrambling on sparse graphs

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arxiv 1805.08215 v3 pith:F4IKHZXD submitted 2018-05-21 cond-mat.str-el cond-mat.stat-mechhep-thquant-ph

classification cond-mat.str-elcond-mat.stat-mechhep-thquant-ph
keywords quantumscramblingtimemodelscircuitsdegreesfastfew-body
verification ladder T0 review T1 audit T2 compute T3 formal
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Given a quantum many-body system with few-body interactions, how rapidly can quantum information be hidden during time evolution? The fast scrambling conjecture is that the time to thoroughly mix information among N degrees of freedom grows at least logarithmically in N. We derive this inequality for generic quantum systems at infinite temperature, bounding the scrambling time by a finite decay time of local quantum correlations at late times. Using Lieb-Robinson bounds, generalized Sachdev-Ye-Kitaev models, and random unitary circuits, we propose that a logarithmic scrambling time can be achieved in most quantum systems with sparse connectivity. These models also elucidate how quantum chaos is not universally related to scrambling: we construct random few-body circuits with infinite Lyapunov exponent but logarithmic scrambling time. We discuss analogies between quantum models on graphs and quantum black holes, and suggest methods to experimentally study scrambling with as many as 100 sparsely-connected quantum degrees of freedom.

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Cited by 3 Pith papers

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  1. Strong unitary designs in optimal depth and space

    quant-ph 2026-08 conditional novelty 8.0 of 10

    For every fixed k and error tolerance, strong approximate unitary k-designs are constructed in optimal Theta(log n) depth on the n system qubits using random perfect-matching layers.

  2. Entanglement Entropy in Quantum Networks with Tunable Geometry

    quant-ph 2026-07 conditional novelty 6.0 of 10

    Tuning the link range of a random hopping network produces a robust intermediate localized regime, driven by structural disorder, between the delocalized chain and all-to-all limits.

  3. Black Hole Interiors via Spin Models

    hep-th 2019-08 conditional novelty 6.0 of 10

    Numerical simulations show that a mean-field Hamiltonian reproduces exact time evolution of a four-spin quantum system up to the scrambling time, and that the system fast-scrambles with a scrambling time growing logar...

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